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A Novel Thermodynamic Model and Temperature Control Method of Laser Soldering Systems

机译:激光焊接系统的新型热力学模型和温度控制方法

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Laser technology is vital in production of precision electronic components and has been widely used in modern industry. In laser soldering systems, accurate temperature control remains a challenging problem, since the temperature is highly sensitive to laser power and thermodynamic parameters of solder joints. In this paper, a good solution is proposed to solve the problem by controlling the temperature based on a novel thermodynamic model. In the model, many of the major factors are taken into account, such as laser energy, flux influence, and solder joints with different parameters. Aimed at the thermodynamic process and the influence of solder fluxes, a mixed mode control method is used to track the designed target temperature curve; this method can produce a solder joint with good quality. As a result, a model-based feed-forward and proportional, integral, and derivative (PID) mixed control method is developed. In practice, the proposed method is verified to have a wider product capability and production size; and a rate of good products of 99.94% is achieved with consuming approximately half of the energycomparing with manual soldering and constant laser power soldering.
机译:激光技术对精密电子元件的生产至关重要,已广泛应用于现代工业中。在激光焊接系统中,精确的温度控制仍然是一个具有挑战性的问题,因为温度对激光功率和焊点的热力学参数高度敏感。本文提出了一个很好的解决方案,通过基于新型热力学模型的温度控制来解决该问题。在模型中,考虑了许多主要因素,例如激光能量,通量影响和具有不同参数的焊点。针对热力学过程和助焊剂的影响,采用混合模式控制方法跟踪设计的目标温度曲线。这种方法可以产生高质量的焊点。结果,开发了基于模型的前馈和比例,积分和微分(PID)混合控制方法。在实践中,该方法经验证具有更广泛的产品能力和生产规模;与手工焊接和恒定激光功率焊接相比,通过消耗大约一半的能量,可以达到99.94%的优质产品率。

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